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Improving the quantification of deuterium in zirconium alloy atom probe tomography data using existing analysis methods

Abstract:
Zirconium alloys are common fuel claddings in nuclear fission reactors and are susceptible to the effects of hydrogen embrittlement. There is a need to be able to detect and image hydrogen at the atomic scale to gain the experimental evidence necessary to fully understand hydrogen embrittlement. Through the use of deuterium tracers, atom probe tomography (APT) is able to detect and spatially locate hydrogen at the atomic scale. Previous works have highlighted issues with quantifying deuterium concentrations using APT due to complex peak overlaps in the mass-to-charge-state ratio spectrum between molecular hydrogen and deuterium (H2 and D). In this work, we use new methods to analyze historic and simulated atom probe data, by applying currently available data analysis tools, to optimize solving peak overlaps to improve the quantification of deuterium. This method has been applied to literature data to quantify the deuterium concentrations in a concentration line profile across an α-Zr/deuteride interface.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1017/s1431927621012848

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Materials
Role:
Author
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Role:
Author
ORCID:
0000-0002-3600-5108


Publisher:
Cambridge University Press
Journal:
Microscopy and Microanalysis More from this journal
Volume:
28
Issue:
4
Pages:
1245-1254
Publication date:
2021-10-01
Acceptance date:
2021-09-12
DOI:
EISSN:
1435-8115
ISSN:
1431-9276


Language:
English
Keywords:
Pubs id:
1199323
Local pid:
pubs:1199323
Deposit date:
2021-10-07
ARK identifier:

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